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Updated: May 16, 2026

Cell Membrane Repair Assay Using a Two-photon Laser Microscope
Published on: January 2, 2018
The C2A domain in dysferlin is important for association with MG53 (TRIM72)
Chie Matsuda1, Katsuya Miyake, Kimihiko Kameyama
1Biomedical Research Institute, National Institute of Advanced Industrial Science and Technology; Department of Neuromuscular Research, National Institute of Neuroscience, National Center of Neurology and Psychiatry.
Abstract:
In skeletal muscle, Mitsugumin 53 (MG53), also known as muscle-specific tripartite motif 72, reportedly interacts with dysferlin to regulate membrane repair. To better understand the interactions between dysferlin and MG53, we conducted immunoprecipitation (IP) and pull-down assays. Based on IP assays, the C2A domain in dysferlin associated with MG53. MG53 reportedly exists as a monomer, a homodimer, or an oligomer, depending on the redox state. Based on pull-down assays, wild-type dysferlin associated with MG53 dimers in a Ca2+-dependent manner, but MG53 oligomers associated with both wild-type and C2A-mutant dysferlin in a Ca2+-independent manner. In pull-down assays, a pathogenic missense mutation in the C2A domain (W52R-C2A) inhibited the association between dysferlin and MG53 dimers, but another missense mutation (V67D-C2A) altered the calcium sensitivity of the association between the C2A domain and MG53 dimers. In contrast to the multimers, the MG53 monomers did not interact with wild-type or C2A mutant dysferlin in pull-down assays. These results indicated that the C2A domain in dysferlin is important for the Ca2+-dependent association with MG53 dimers and that dysferlin may associate with MG53 dimers in response to the influx of Ca2+ that occurs during membrane injury. To examine the biological role of the association between dysferlin and MG53, we co-expressed EGFP-dysferlin with RFP-tagged wild-type MG53 or RFP-tagged mutant MG53 (RFP-C242A-MG53) in mouse skeletal muscle, and observed molecular behavior during sarcolemmal repair; it has been reported that the C242A-MG53 mutant forms dimers, but not oligomers. In response to membrane wounding, dysferlin accumulated at the injury site within 1 second; this dysferlin accumulation was followed by the accumulation of wild-type MG53. However, accumulation of RFP-C242A MG53 at the wounded site was impaired relative to that of RFP-wild-type MG53. Co-transfection of RFP-C242A MG53 inhibited the recruitment of dysferlin to the sarcolemmal injury site. We also examined the molecular behavior of GFP-wild-type MG53 during sarcolemmal repair in dysferlin-deficient mice which show progressive muscular dystrophy, and found that GFP-MG53 accumulated at the wound similar to wild-type mice. Our data indicate that the coordination between dysferlin and MG53 plays an important role in efficient sarcolemmal repair.
Insights
Mitsugumin 53 (MG53) and dysferlin coordinate for efficient skeletal muscle membrane repair. Calcium-dependent interactions between MG53 dimers and dysferlin
Area of Science:
- Muscle biology
- Membrane repair mechanisms
- Protein-protein interactions
Background:
- Mitsugumin 53 (MG53) is a muscle-specific protein involved in membrane repair.
- Dysferlin is crucial for skeletal muscle membrane integrity and repair.
Purpose of the Study:
- To elucidate the interaction mechanisms between MG53 and dysferlin.
- To understand the role of these interactions in skeletal muscle membrane repair.
Main Methods:
- Immunoprecipitation (IP) and pull-down assays were used to investigate protein interactions.
- In vivo studies in mouse skeletal muscle co-expressing MG53 and dysferlin variants were performed.
- Sarcolemmal repair was observed following membrane wounding in engineered mouse models.
Main Results:
- The C2A domain of dysferlin interacts with MG53 dimers in a calcium-dependent manner.
- MG53 oligomers bind dysferlin independently of calcium, while monomers do not interact.
- A specific MG53 mutant (C242A) impaired dysferlin recruitment to wound sites and hindered membrane repair.
- MG53 still accumulated at wound sites in dysferlin-deficient mice.
Conclusions:
- Dysferlin's C2A domain is critical for calcium-dependent binding to MG53 dimers during membrane injury.
- The interaction between dysferlin and MG53 is essential for effective sarcolemmal repair.
- MG53's oligomeric state influences its interaction with dysferlin.
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